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About the Role
We are looking for an AI Engineer to work on an enterprise AI platform that is transforming how public-sector organizations evaluate tenders and procurement documents.
Our platform uses Generative AI, Agentic AI, document intelligence and open-source foundation models to automate complex document-heavy workflows involved in tender evaluation. The product is already deployed in large Public Sector Undertakings (PSUs) and runs on NVIDIA GPU infrastructure using open-source AI models.
This role sits at the intersection of AI research and production engineering. You will experiment with new models and techniques, but the goal is not research for its own sake — it is to improve accuracy, reduce latency and cost, and make the product increasingly autonomous.
What You Will Work On
What We're Looking For
Must Have
Good to Have
What Success Looks Like
In this role, you will be expected to move beyond simply integrating LLM APIs. You will help us answer questions such as:
You will have significant ownership in taking these ideas from experiment → benchmark → engineering → production.
Why Join Us
You will work on an AI product that is already solving real enterprise problems in production, rather than building prototypes that never leave the lab.
The role offers an opportunity to work across:
Open-source AI models → AI research → GPU optimization → Agentic AI → Production engineering → Enterprise deployment
If you enjoy going deep into models, experimenting with new AI techniques, writing production-grade code and seeing your work directly improve a live AI product, this role is for you.
Job ID: 153884493
Skills:
Tensorflow, Machine Learning, Pytorch, Docker, Azure, Kubernetes, Python, Azure DevOps, Scikit-learn
Skills:
Retrieval-Augmented Generation (RAG), Infrastructure as Code (IaC), Amazon Web Services, Google Cloud Platform, Terraform, Azure, LangChain, Regula test cases, RAG vector databases, Cloud infrastructure deployment pipelines, Vector databases, Rego policies, LangGraph, LLM APIs, Open Policy Agent
Skills:
PowerShell, Bash, Python, Azure Container Registry ACR, Azure Data Lake Storage ADLS Gen2, Azure Key Vault, Azure DevOps Pipelines and GitHub Actions, Docker and Helm, Azure SQL Database, Azure Kubernetes Service AKS, Azure Data Factory and Databricks, Azure Monitor and Log Analytics, Azure App Service Virtual Machines VNet, YAML-based CI CD automation
Skills:
Apis, automated testing practices, GenAI, AI services, application components, secure coding practices, prompt engineering frameworks, LLM integrations, RAG pipelines, inference services, dependency management
Skills:
Machine Learning, Rest Apis, Python, LangChain, Generative AI, Pinecone, Agentic AI Frameworks, Retrieval-Augmented Generation, Vector Databases, FAISS, ChromaDB, Weaviate, LlamaIndex, Prompt Engineering, Large Language Models